首页> 外文学位 >Anesthetic and ascending arousal system modulation of cortical functional integration and BOLD functional connectivity in the rat brain.
【24h】

Anesthetic and ascending arousal system modulation of cortical functional integration and BOLD functional connectivity in the rat brain.

机译:麻醉和上升唤醒系统对大鼠大脑皮质功能整合和BOLD功能连接的调节。

获取原文
获取原文并翻译 | 示例

摘要

Anesthetic agents can safely, and reversibly alter the states of consciousness without significantly affecting the structural integrity of the central nervous system. Despite their widespread use, and the advances that have been made in understanding the interplay and relationship(s) between anesthetic agents with specific receptor and molecular sites, the neural mechanisms governing anesthetic induced suppression of consciousness remain poorly understood. The highly coordinated and specialized neuronal networks that give rise to emergent cortical properties (sensory perception, learning and memory, and consciousness) are believed to be disrupted by anesthetic agents via common mechanisms. In addition to their direct effects on the thalamus and cerebral cortex, anesthetic agents may encourage loss of consciousness through an interaction with the ascending arousal system (AAS).;The overall goal of this work was to use a multimodal approach to further examine mechanisms of anesthesia and the modulation of anesthetic state by manipulating components of the ascending arousal system (AAS). More specifically, I examined:;Aim 1: The concentration-dependent effects of propofol anesthesia on resting state BOLD functional connectivity. I hypothesized that brain connectivity undergoes complex changes at specific anesthetic depths and in distinct neural networks. To this end, I acquired resting state fMRI time series simultaneously with electroencephalographic (EEG) signals from rats under intravenously administered propofol at increasing doses from light sedation to deep anesthesia. Intrinsic functional connectivity was altered in a multiphasic dose-dependent, and region-specific manner during deepening anesthesia by propofol associated with diminished consciousness. Cortical connectivity was suppressed before subcortical connectivity at increasing propofol doses critical for loss of consciousness.;Aim 2: Determine whether norepinephrine infusion into the nucleus Basalis of Meynert (NBM) would elicit cortical and behavioral arousal under moderate depth of steady state anesthesia. I hypothesized that microinfusion of norepinephrine into NBM would facilitate electroencephalographic and behavioral arousal during steady-state desflurane anesthesia. Pharmacologic modulation of the NBM by norepinephrine during desflurane anesthesia produced transient behavioral arousals that, when present, were predictable by EEG desynchronization. The transient nature of the responses suggests a similarity with microarousals normally observed during natural sleep, and may imply a mechanism for transient awareness under light anesthesia.;Aim 3: The effect of electrical stimulation of the nucleus Pontis Oralis (PnO) on cortical information capacity in desflurane anesthetized rats. I hypothesized that, if cortical information processing is under the control of the AAS, and anesthesia suppresses information integration as previously proposed then a plausible question is whether exogenous reactivation of the AAS, in particular that of the nucleus Pontis Oralis (PnO), may restore cortical information integration and presumably, consciousness as well. Electrical stimulation of the PnO elicited local field potential (LFP) desynchronization, as well as alterations in the neuronal spike firing patterns of the multi-unit activity (MUA) in the parietal association and secondary visual cortex. This led to an increase in integration and interaction entropy, non-linear information-theoretic measures that are reflective of spike firing patterns, after PnO stimulation.;Aim 4: The effect of electrical stimulation of the nucleus Pontis Oralis (PnO) on cortical arousal and BOLD functional connectivity in isoflurane-anesthetized rats. I hypothesized that electrical stimulation, using the proper choice of parameters, of the PnO under an isoflurane concentration sufficient for LOC should induce cortical arousal and changes in functional connectivity (FC) in the absence of behavioral activation. Electrical stimulation of the PnO was accompanied by an increase in FC between the NBM and key regions of the limbic system that may allow affective and episodic information processing between the cortex and related subcortical networks.
机译:麻醉剂可以安全,可逆地改变意识状态,而不会显着影响中枢神经系统的结构完整性。尽管它们被广泛使用,并且在理解麻醉剂与特定受体和分子位点之间的相互作用和关系方面取得了进展,但是控制麻醉剂诱导的意识抑制的神经机制仍然知之甚少。麻醉药会通过常见机制破坏高度协调和专业的神经网络,这些网络会产生新出现的皮质特性(感觉知觉,学习记忆和意识)。除了直接作用于丘脑和大脑皮层外,麻醉剂还可能通过与上升觉醒系统(AAS)的相互作用而导致意识丧失。这项工作的总体目标是采用多峰方法进一步检查麻醉机制。麻醉和麻醉状态的调节,方法是操纵上升唤醒系统(AAS)的组件。更具体地说,我检查了:目的1:异丙酚麻醉对静止状态BOLD功能连接的浓度依赖性作用。我假设大脑的连通性在特定的麻醉深度和不同的神经网络中会经历复杂的变化。为此,我从静脉镇静丙泊酚的大鼠获得了静息状态fMRI时间序列和脑电图(EEG)信号,剂量从轻度镇静到深度麻醉不断增加。在加深麻醉期间,丙泊酚与意识减弱相关,内在功能连通性以多相剂量依赖性和区域特异性方式改变。目的2:确定在中等深度的稳态麻醉下,去甲肾上腺素注入Meynert基底核(NBM)是否会引起皮质和行为觉醒,在增加异丙酚剂量的异丙酚剂量之前,皮质下连通性被抑制。我假设去甲肾上腺素微滴入去甲肾上腺素会在稳态地氟烷麻醉期间促进脑电图和行为唤醒。去甲肾上腺素麻醉期间去甲肾上腺素对NBM的药理调节产生短暂的行为唤醒,当存在时,可通过EEG去同步来预测。反应的短暂性质表明与自然睡眠期间通常观察到的微耳相似,并且可能暗示在轻度麻醉下获得短暂觉察的机制。目的3:电刺激蓬蒂奥利斯核(PnO)对皮质信息容量的影响在地氟醚麻醉的大鼠中。我假设,如果皮质信息处理在AAS的控制下,并且麻醉如先前所建议的那样抑制了信息整合,那么一个可能的问题是AAS的外源性重新激活,特别是庞蒂斯口腔的核(PnO)是否可以恢复?皮层信息的整合,大概还有意识。 PnO的电刺激引起局部场电位(LFP)失步,以及顶叶缔合和继发性视觉皮层中多单位活动(MUA)的神经元放电模式的改变。这导致积分和相互作用熵的增加,非线性信息理论的测量方法反映了PnO刺激后的尖峰发射模式。目标4:电刺激蓬蒂核(PnO)对皮层唤醒的影响和异氟烷麻醉大鼠的BOLD功能连接。我假设在适当的参数选择下,在足以引起LOC的异氟烷浓度下对PnO进行电刺激,可以在没有行为激活的情况下引起皮质唤醒和功能连接性(FC)的改变。 PnO的电刺激伴随着NBM和边缘系统关键区域之间FC的增加,这可能允许皮质与相关皮层下网络之间的情感和情节信息处理。

著录项

  • 作者

    Pillay, Siveshigan.;

  • 作者单位

    The Medical College of Wisconsin.;

  • 授予单位 The Medical College of Wisconsin.;
  • 学科 Biology Neuroscience.;Health Sciences Surgery.;Biophysics General.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 221 p.
  • 总页数 221
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化学(高聚物);
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号